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Numerical and experimental investigation on thermohydrodynamic performance of turbocharger rotor-bearing system

机译:涡轮增压器转子系统热流动力学性能的数值实验研究

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摘要

For high-speed rotor-bearing systems, mechanical performance is strongly coupled with thermal behavior. In this paper, experiments and numerical simulations are conducted to investigate the thermohydrodynamic (THD) performance of a turbocharger rotor-bearings system. The temperature of the lubrication system and the vibration of the rotor were predicted by numerical simulation and have been validated by experiment. Four subsynchronous frequencies were excited by inner and outer films. Three of them showed conical bending and one cylindrical. The results suggest that solid parts play a significant role in THD analysis, because the temperature fields of solid parts affect the oil film clearances by thermal expansion. The rotor transfers considerable heat from the turbine to the inner film, and then a great quantity of heat will continuously be transferred from the inner film to the outer film by rings. Moreover, three-dimensional transient thermal fields of oil films are proved essential for high-speed oil film bearings, for the temperature and viscosity distributions along the film thickness cannot be negligible. Since the undeveloped thermal boundary layers exist in the oil film, it may cause errors if simplified into a two-dimensional model with thickness-averaged temperature fields. (C) 2017 Elsevier Ltd. All rights reserved.
机译:对于高速转子轴承系统,机械性能与热行为相结合。在本文中,进行了实验和数值模拟,以研究涡轮增压器转子轴承系统的热流学(THD)性能。通过数值模拟预测润滑系统的温度和转子的振动,并通过实验验证。内部和外部电影激发了四个子同步频率。其中三个显示锥形弯曲和一个圆柱形。结果表明,固体零件在THD分析中发挥着重要作用,因为固体部件的温度场通过热膨胀影响油膜间隙。转子将从涡轮机转移到内膜的相当大的热量,然后通过环从内膜转移到外膜的大量热量。此外,对高速油膜轴承的三维瞬态热场被证明是高速油膜轴承的必要条件,对于膜厚度的温度和粘度分布不能忽略不计。由于油膜中存在未开发的热边界层,因此如果简化到具有厚度平均温度场的二维模型,则可能导致误差。 (c)2017 Elsevier Ltd.保留所有权利。

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